0

I have a table

t:flip `date`sym`ts`qty!(`d1`d1`d1`d1`d1`d1`d2;`s1`s1`s2`s1`s1`s2`s1;`t1`t1`t2`t3`t4`t5`t1;-100 -100 200 200 500 -300 -400)

date    sym   ts     qty
d1       s1   t1    -100
d1       s1   t1    -100
d1       s2   t2     200
d1       s1   t3     200
d1       s1   t4     500
d1       s2   t5    -300
d2       s1   t1    -400

and I would like to get the cummulative sum of qty for each sym up to that moment for the same day

date    sym   ts     qty   cumsum
d1       s1   t1    -100     -200 // -100 - 100
d1       s2   t2     200      200 //  200
d1       s1   t3     200        0 // -100 -100 + 200
d1       s1   t4     500      500 // -100 -100 + 200 + 500
d1       s2   t5    -300     -100 //  200 - 300
d2       s1   t1    -400     -400 // -400 (date is d2)

I tried using

select sums qty by date, ts, sym from t

but with this I only managed to collapse rows that have the same key datets`sym into a list, but it doesnt give me a rolling sum. any suggestions?

EDIT: so, basically I want to append a column that shows the value I would get from this query

select sum qty from t where sym =`symbol_of_this_row, ts <= ts_of_this_row, date = _date_of_this_row
2

This should do what you want:

//Ascend by date and time to make sure that result sets match
`date`ts xasc 
    //Compute cumulative sums by date, sym, timestamp
    update sums cumul by date,sym from 
        //Make sure that there is a single qty for each timestamp
        select cumul:sum qty by date,sym,ts from t
1

This might work, although a little ugly;

`date`ts xasc 0! / sort and unkey
    update cumsum:sums qty by date, sym from 
        select sum qty by date, sym, ts from t

Which produces;

date sym ts qty  cumsum
-----------------------
d1   s1  t1 -200 -200  
d1   s2  t2 200  200   
d1   s1  t3 200  0     
d1   s1  t4 500  500   
d1   s2  t5 -300 -100  
d2   s1  t1 -400 -400  

Notice qty in the first row is different to your example. That is because I had to aggregate the data within the same ts before running the cumulative sum. There is probably a way to do this implicitly but it won't come to me right now.

1

i may be misunderstanding your question.. so you want the cumulative sum for the rows that match datesym`timestamp, yeah?

How about this:

    t: update cumsum:sums qty by date, sym, ts from t
    // for the sake of 'pretty view' sort by `date`sym`ts 
    `date`sym`ts xasc t

EDIT: I'm sure you can make it prettier by doing functional update (http://www.timestored.com/kdb-guides/functional-queries-dynamic-sql) I just wrote some function on my own to show you the basic idea. 1. Pass table and each row of table.

    temp:{[idx; tbl]
         row: first select from tbl where i = idx;
         : last update cumulative:sums qty from (select from tbl where date=row[`date], sym=row[`sym], ts<=row[`ts]);
         };
  1. update the table via each right (/)

     temp2:{[tbl; idx]
        row: first select from tbl where i = idx;
        :tbl lj (`date`sym`ts xkey enlist last update cumulative:sums qty from  (select from tbl where date=row[`date],sym=row[`sym],ts<=row[`ts]));
        };
    

for #1, you can call something like:

tbl: {: temp[y; x] }[; tbl] each til count tbl

for #2, you can call something like:

tbl: temp2/[tbl; til count tbl]
  • No, I edited trying to explain better – chrise Sep 15 '17 at 9:05
0

If the rows are in chronological order, there is no need to sort the table: the by clause will do what you want.

  1. Use update to calculate cumsum by date and ts
  2. Select last value of cumsum by date, ts, and sym
  3. Remove key

q)0!select last cumsum by date,ts,sym from update cumsum: sums qty by date,sym from t
date ts sym cumsum
------------------
d1   t1 s1  -200
d1   t2 s2  200
d1   t3 s1  0
d1   t4 s1  500
d1   t5 s2  -100
d2   t1 s1  -400

If you need to parameterise any of this (i.e. pass column names as arguments) you will want the functional forms:

q)u:![t;();`date`sym!`date`sym;(enlist`cumsum)!enlist(sums;`qty)]
q)0!?[u;();`date`ts`sym!`date`ts`sym;(enlist`cumsum)!enlist(last;`cumsum)]

More at Q for Mortals: §9. Queries

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.